DocumentCode :
2908136
Title :
Multi element synthetic aperture transmission using a frequency division approach
Author :
Gran, Fredrik ; Jensen, Jørgen Arendt
Author_Institution :
Center for Fast Ultrasound Imaging, Tech. Univ. of Denmark, Lyngby, Denmark
Volume :
2
fYear :
2003
fDate :
5-8 Oct. 2003
Firstpage :
1942
Abstract :
In synthetic aperture imaging an image is created by a number of single element defocused emissions. A low resolution image is created after every emission and a high resolution image is formed when the entire aperture has been covered. Since only one element is used at a time the energy transmitted into the tissue is low. This paper describes a novel method in which the available spectrum is divided into 2N overlapping subbands. This will assure a smooth broadband high resolution spectrum when combined. The signals are grouped into two subsets in which all signals are fully orthogonal. The transmitting elements are excited so that N virtual sources are formed. All sources are excited using one subset at a time. The signals can be separated by matched filtration, and the corresponding information is extracted. The individual source information is hence available in every emission and the method can therefore be used for flow imaging, unlike with Hadamard and Golay coding. The frequency division approach increases the SNR by a factor of N2 compared to conventional pulsed synthetic aperture imaging, provided that N transmission centers are used. Simulations and phantom measurements are presented to verify the method.
Keywords :
acoustic imaging; acoustic signal processing; biomedical ultrasonics; frequency dividers; ultrasonic transmission; Golay coding; Hadamard coding; beamforming; biological tissue; broadband; flow imaging; frequency division approach; high resolution spectrum; matched filtration; orthogonal signals; phantom measurements; pulsed synthetic aperture imaging; signal-to-noise ratio; single element defocused emissions; source information; synthetic aperture transmission; transmitted energy; transmitting elements; virtual sources; Apertures; Data mining; Energy resolution; Error correction; Error correction codes; Filtration; Frequency conversion; High-resolution imaging; Image resolution; Signal resolution;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ultrasonics, 2003 IEEE Symposium on
Print_ISBN :
0-7803-7922-5
Type :
conf
DOI :
10.1109/ULTSYM.2003.1293297
Filename :
1293297
Link To Document :
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